singe/thirdparty/openssl/test/radix/quic_tests.c

821 lines
22 KiB
C

/*
* Copyright 2024-2026 The OpenSSL Project Authors. All Rights Reserved.
*
* Licensed under the Apache License 2.0 (the "License"). You may not use
* this file except in compliance with the License. You can obtain a copy
* in the file LICENSE in the source distribution or at
* https://www.openssl.org/source/license.html
*/
#include "internal/quic_reactor.h"
#include "../../ssl/rio/poll_builder.h"
#if defined(_AIX)
/*
* Some versions of AIX define macros for events and revents for use when
* accessing pollfd structures (see Github issue #24236). That interferes
* with our use of these names here. We simply undef them.
*/
#undef revents
#undef events
#endif
/*
* Test Scripts
* ============================================================================
*/
/*
* Test: simple_conn
* -----------------
*/
DEF_SCRIPT(simple_conn, "simple connection to server")
{
size_t i;
for (i = 0; i < 2; ++i) {
if (i == 0) {
OP_SIMPLE_PAIR_CONN_D();
} else {
OP_CLEAR();
OP_SIMPLE_PAIR_CONN();
}
OP_WRITE_B(C, "apple");
OP_ACCEPT_CONN_WAIT(L, La, 0);
OP_ACCEPT_CONN_NONE(L);
OP_READ_EXPECT_B(La, "apple");
OP_WRITE_B(La, "orange");
OP_READ_EXPECT_B(C, "orange");
}
}
DEF_SCRIPT(simple_thread_child,
"test that RADIX multithreading is working (child)")
{
}
/*
* Test: simple_thread
* -------------------
*/
DEF_SCRIPT(simple_thread,
"test that RADIX multithreading is working")
{
size_t i;
for (i = 0; i < 2; ++i)
OP_SPAWN_THREAD(simple_thread_child);
}
/*
* Test: ssl_poll
* --------------
*/
DEF_SCRIPT(ssl_poll_child,
"test that SSL_poll is working (child)")
{
OP_SLEEP(100);
OP_WRITE_B(C0, "extra");
}
DEF_FUNC(ssl_poll_check)
{
int ok = 0;
SSL *La, *Lax[4];
SSL_POLL_ITEM items[6] = { 0 }, expected_items[6] = { 0 };
size_t result_count = 0, i;
const struct timeval z_timeout = { 0 }, *p_timeout = &z_timeout;
struct timeval timeout = { 0 };
uint64_t mode;
size_t expected_result_count;
OSSL_TIME time_before, time_after;
F_POP(mode);
REQUIRE_SSL_5(La, Lax[0], Lax[1], Lax[2], Lax[3]);
items[0].desc = SSL_as_poll_descriptor(La);
items[0].events = 0;
items[0].revents = 0;
for (i = 0; i < 4; ++i) {
items[i + 1].desc = SSL_as_poll_descriptor(Lax[i]);
items[i + 1].events = SSL_POLL_EVENT_R | SSL_POLL_EVENT_I;
items[i + 1].revents = 0;
}
items[5].desc = SSL_as_poll_descriptor(SSL_get0_listener(La));
switch (mode) {
case 0: /* Nothing ready */
case 2:
expected_result_count = 0;
break;
case 1: /* Various events reported correctly */
expected_result_count = 5;
items[0].events = SSL_POLL_EVENT_OS;
expected_items[0].revents = SSL_POLL_EVENT_OS;
expected_items[1].revents = SSL_POLL_EVENT_R;
for (i = 0; i < 4; ++i) {
items[i + 1].events |= SSL_POLL_EVENT_W;
expected_items[i + 1].revents |= SSL_POLL_EVENT_W;
}
break;
case 3: /* Blocking test */
expected_result_count = 1;
expected_items[1].revents = SSL_POLL_EVENT_R;
p_timeout = &timeout;
timeout.tv_sec = 10;
timeout.tv_usec = 0;
break;
case 4: /* Listener test */
expected_result_count = 1;
items[5].events = SSL_POLL_EVENT_IC;
expected_items[5].revents = SSL_POLL_EVENT_IC;
break;
default:
goto err;
}
/* Zero-timeout call. */
result_count = SIZE_MAX;
time_before = ossl_time_now();
if (!TEST_true(SSL_poll(items, OSSL_NELEM(items), sizeof(SSL_POLL_ITEM),
p_timeout, 0, &result_count)))
goto err;
time_after = ossl_time_now();
if (!TEST_size_t_eq(result_count, expected_result_count))
goto err;
for (i = 0; i < OSSL_NELEM(items); ++i)
if (!TEST_uint64_t_eq(items[i].revents, expected_items[i].revents))
goto err;
/*
* The SSL_poll call for the blocking test definitely shouldn't have
* returned sooner than in 100ms.
*/
if (i == 3 && !TEST_uint64_t_ge(ossl_time2ms(ossl_time_subtract(time_after, time_before)), 100))
goto err;
ok = 1;
err:
return ok;
}
DEF_SCRIPT(ssl_poll,
"test that SSL_poll is working")
{
size_t i;
OP_SIMPLE_PAIR_CONN_ND();
/* Setup streams */
OP_NEW_STREAM(C, C0, 0);
OP_WRITE_B(C0, "apple");
OP_NEW_STREAM(C, C1, 0);
OP_WRITE_B(C1, "orange");
OP_NEW_STREAM(C, C2, 0);
OP_WRITE_B(C2, "Strawberry");
OP_NEW_STREAM(C, C3, 0);
OP_WRITE_B(C3, "sync");
OP_ACCEPT_CONN_WAIT1_ND(L, La, 0);
OP_ACCEPT_STREAM_WAIT(La, La0, 0);
OP_READ_EXPECT_B(La0, "apple");
OP_ACCEPT_STREAM_WAIT(La, La1, 0);
OP_READ_EXPECT_B(La1, "orange");
OP_ACCEPT_STREAM_WAIT(La, La2, 0);
OP_READ_EXPECT_B(La2, "Strawberry");
OP_ACCEPT_STREAM_WAIT(La, La3, 0);
OP_READ_EXPECT_B(La3, "sync");
for (i = 0; i <= 4; ++i) {
/* 0: Check nothing ready */
/* 1: Check that various events are reported correctly */
/* 2: Check nothing ready */
/* 3: Blocking call unblocked from child thread */
/* 4: Listener test */
if (i == 1) {
OP_WRITE_B(C0, "orange");
OP_WRITE_B(C3, "sync");
OP_READ_EXPECT_B(La3, "sync");
} else if (i == 2) {
OP_READ_EXPECT_B(La0, "orange");
} else if (i == 3) {
OP_SPAWN_THREAD(ssl_poll_child);
} else if (i == 4) {
OP_NEW_SSL_C(Cb);
OP_SET_PEER_ADDR_FROM(Cb, L);
OP_CONNECT_WAIT(Cb);
}
OP_SELECT_SSL(0, La);
OP_SELECT_SSL(1, La0);
OP_SELECT_SSL(2, La1);
OP_SELECT_SSL(3, La2);
OP_SELECT_SSL(4, La3);
OP_PUSH_U64(i);
OP_FUNC(ssl_poll_check);
if (i == 3)
OP_READ_EXPECT_B(La0, "extra");
if (i == 4) {
OP_ACCEPT_CONN_WAIT1_ND(L, Lb, 0);
OP_NEW_STREAM(Lb, Lb0, 0);
OP_WRITE_B(Lb0, "foo");
OP_READ_EXPECT_B(Cb, "foo");
}
}
}
/*
* Test: poll_abort_blocking
* -------------------------
*
* SSL_poll(), when it has to block, registers each item's QUIC connection
* for cross-thread notification one item at a time (poll_translate() in
* ssl/rio/poll_immediate.c). If an item turns out to already be ready right
* as it is being registered, translation is aborted so the readout loop can
* retry instead of actually blocking. This exercises that abort path and
* checks that:
*
* - SSL_poll() reports success rather than spuriously failing, and
* - any items already registered before the abort have their blocking
* section correctly left (i.e. no leak in the QUIC reactor's blocking
* waiter count).
*
* The race between an item being registered and becoming ready is normally
* vanishingly narrow, so we use ossl_quic_poll_translate_test_step_cb (test
* instrumentation only, see ssl/rio/poll_builder.h) to deterministically
* make the second item ready immediately before poll_translate() processes
* it, while the first item is still mid-registration.
*/
struct poll_abort_test_ctx {
SSL *peer_writer; /* write here to make target ready */
SSL *target;
uint64_t target_events;
size_t trigger_idx;
int made_ready; /* set by poll_abort_test_step_cb() on success */
};
static void poll_abort_test_step_cb(size_t idx, void *arg)
{
struct poll_abort_test_ctx *ctx = arg;
uint64_t revents = 0;
int i;
if (idx != ctx->trigger_idx)
return;
if (SSL_write(ctx->peer_writer, "x", 1) != 1)
return;
/* Force the data through synchronously so target is ready by the time we return. */
for (i = 0; i < 1000; ++i) {
if (!ossl_quic_conn_poll_events(ctx->target, ctx->target_events,
/* do_tick = */ 1, &revents))
return;
if (revents != 0) {
ctx->made_ready = 1;
return;
}
OSSL_sleep(1);
}
}
DEF_FUNC(check_poll_abort_blocking)
{
int ok = 0;
SSL *C, *C0, *Cb0, *Lb0;
QUIC_CHANNEL *ch0;
QUIC_REACTOR *rtor0;
SSL_POLL_ITEM items[2] = { 0 };
size_t result_count = SIZE_MAX, waiters_before, waiters_after;
struct poll_abort_test_ctx ctx;
const struct timeval z_timeout = { 0 };
/*
* C0 and Cb0 are streams of two independent client connections, and so
* belong to two independent QUIC_REACTORs. The bug being tested for does
* not actually require this: it reproduces just as well if all items
* share one reactor. What needs two reactors is poll_abort_test_step_cb()
* below, which forces Cb0 ready by ticking its reactor directly, on this
* thread, while C0's blocking section is still open. Doing that on C0's
* own (shared) reactor would deadlock: ossl_quic_reactor_tick() would see
* a nonzero cur_blocking_waiters left over from C0 and call
* rtor_notify_other_threads(), which waits on a condvar for some *other*
* thread to clear the notifier signal - a thread that doesn't exist here.
* Using Cb0's own, still-untouched reactor keeps that tick a no-op.
*/
REQUIRE_SSL_4(C, C0, Cb0, Lb0);
items[0].desc = SSL_as_poll_descriptor(C0);
items[0].events = SSL_POLL_EVENT_R;
items[1].desc = SSL_as_poll_descriptor(Cb0);
items[1].events = SSL_POLL_EVENT_R;
/* Sanity check: nothing ready yet, so SSL_poll() will need to block. */
if (!TEST_true(SSL_poll(items, OSSL_NELEM(items), sizeof(SSL_POLL_ITEM),
&z_timeout, 0, &result_count))
|| !TEST_size_t_eq(result_count, 0))
goto err;
if (!TEST_ptr(ch0 = ossl_quic_conn_get_channel(C)))
goto err;
rtor0 = ossl_quic_channel_get_reactor(ch0);
waiters_before = rtor0->cur_blocking_waiters;
ctx.peer_writer = Lb0;
ctx.target = Cb0;
ctx.target_events = items[1].events;
ctx.trigger_idx = 1;
ctx.made_ready = 0;
ossl_quic_poll_translate_test_step_cb_arg = &ctx;
ossl_quic_poll_translate_test_step_cb = poll_abort_test_step_cb;
result_count = SIZE_MAX;
/*
* No timeout: if the abort_blocking case were instead to actually block,
* this call would hang forever rather than fail fast.
*/
ok = TEST_true(SSL_poll(items, OSSL_NELEM(items), sizeof(SSL_POLL_ITEM),
NULL, 0, &result_count));
ossl_quic_poll_translate_test_step_cb = NULL;
ossl_quic_poll_translate_test_step_cb_arg = NULL;
if (!ok)
goto err;
ok = 0;
if (!TEST_true(ctx.made_ready)
|| !TEST_size_t_ge(result_count, 1)
|| !TEST_true((items[1].revents & SSL_POLL_EVENT_R) != 0))
goto err;
/* The first item's blocking-section entry must have been balanced. */
waiters_after = rtor0->cur_blocking_waiters;
if (!TEST_size_t_eq(waiters_after, waiters_before))
goto err;
ok = 1;
err:
ossl_quic_poll_translate_test_step_cb = NULL;
ossl_quic_poll_translate_test_step_cb_arg = NULL;
return ok;
}
DEF_SCRIPT(poll_abort_blocking,
"test that SSL_poll() correctly handles an item becoming ready while blocking is being set up")
{
OP_SIMPLE_PAIR_CONN_ND();
OP_NEW_STREAM(C, C0, 0);
OP_WRITE_B(C0, "probe0");
OP_ACCEPT_CONN_WAIT1_ND(L, La, 0);
OP_ACCEPT_STREAM_WAIT(La, La0, 0);
OP_READ_EXPECT_B(La0, "probe0");
/* A second, independent client connection to the same listener. */
OP_NEW_SSL_C(Cb);
OP_SET_PEER_ADDR_FROM(Cb, L);
OP_CONNECT_WAIT(Cb);
OP_SET_DEFAULT_STREAM_MODE(Cb, SSL_DEFAULT_STREAM_MODE_NONE);
OP_NEW_STREAM(Cb, Cb0, 0);
OP_WRITE_B(Cb0, "probe1");
OP_ACCEPT_CONN_WAIT1_ND(L, Lb, 0);
OP_ACCEPT_STREAM_WAIT(Lb, Lb0, 0);
OP_READ_EXPECT_B(Lb0, "probe1");
OP_SELECT_SSL(0, C);
OP_SELECT_SSL(1, C0);
OP_SELECT_SSL(2, Cb0);
OP_SELECT_SSL(3, Lb0);
OP_FUNC(check_poll_abort_blocking);
}
DEF_FUNC(check_writeable)
{
int ok = 0;
SSL *ssl;
SSL_POLL_ITEM item;
size_t result_count = 0;
uint64_t expect;
const struct timeval z_timeout = { 0 }, *p_timeout = &z_timeout;
F_POP(expect);
REQUIRE_SSL(ssl);
item.desc = SSL_as_poll_descriptor(ssl);
item.events = SSL_POLL_EVENT_W;
item.revents = 0;
/* Zero-timeout call. */
result_count = SIZE_MAX;
if (!TEST_true(SSL_poll(&item, 1, sizeof(SSL_POLL_ITEM),
p_timeout, 0, &result_count)))
goto err;
ok = (!!(item.revents & SSL_POLL_EVENT_W) == expect);
err:
return ok;
}
DEF_SCRIPT(check_cwm, "check stream obeys cwm")
{
OP_SIMPLE_PAIR_CONN();
/* Create the initial stream by writing some data */
OP_WRITE_RAND(C, 1024);
/* We should be writeable at the start */
OP_PUSH_U64(1);
OP_SELECT_SSL(0, C);
OP_FUNC(check_writeable);
/* Default stream cwm is 512k (we already sent 1k). Consume all the rest */
OP_WRITE_RAND(C, 511 * 1024);
/* Confirm we are no longer writeable */
OP_PUSH_U64(0);
OP_SELECT_SSL(0, C);
OP_FUNC(check_writeable);
/* We now expect writes to fail */
OP_WRITE_FAIL(C);
}
struct mutcbk_ctx {
QUIC_PKT_HDR mutctx_qhdrin;
OSSL_QTX_IOVEC mutctx_iov;
const unsigned char *mutctx_inject;
size_t mutctx_inject_sz;
int mutctx_done;
};
static int mutcbk_inject_frames(const QUIC_PKT_HDR *hdrin,
const OSSL_QTX_IOVEC *iovecin, size_t numin, QUIC_PKT_HDR **hdrout,
const OSSL_QTX_IOVEC **iovecout, size_t *numout, void *arg)
{
struct mutcbk_ctx *mutctx = (struct mutcbk_ctx *)arg;
size_t i;
size_t grow_allowance = 1200; /* QUIC_MIN_INITIAL_DGRAM_LEN */
size_t bufsz = 0;
char *buf;
/*
* make injection callback a one shot event,
* callback is invoked for every packet we
* want to modify only one packet here. Returning 0 tells the QTX the
* packet send itself failed (tearing down the connection), so once
* we're done mutating we must pass subsequent packets through
* unmodified instead.
*/
if (mutctx->mutctx_done) {
*hdrout = (QUIC_PKT_HDR *)hdrin;
*iovecout = iovecin;
*numout = numin;
return 1;
}
mutctx->mutctx_done = 1;
for (i = 0; i < numin; i++)
bufsz += iovecin[i].buf_len;
mutctx->mutctx_iov.buf_len = bufsz; /* keeps old size */
grow_allowance -= (bufsz < grow_allowance) ? bufsz : grow_allowance;
/* AEAD tag (16 bytes) + long header (14 bytes) */
grow_allowance -= (30 < grow_allowance) ? 30 : grow_allowance;
grow_allowance -= (hdrin->dst_conn_id.id_len < grow_allowance) ? hdrin->dst_conn_id.id_len : grow_allowance;
grow_allowance -= (hdrin->src_conn_id.id_len < grow_allowance) ? hdrin->src_conn_id.id_len : grow_allowance;
if (grow_allowance == 0) {
TEST_info("mutcbk_inject_frames() not enough space to inject");
return 0;
}
bufsz += grow_allowance;
/* discard const */
OPENSSL_free((char *)mutctx->mutctx_iov.buf);
mutctx->mutctx_iov.buf = OPENSSL_malloc(bufsz);
/* discard const */
buf = (char *)mutctx->mutctx_iov.buf;
if (buf == NULL) {
TEST_info("mutcbk_inject_frames() OPENSSL_malloc() failed");
return 0;
}
for (i = 0; i < numin; i++) {
memcpy(buf, iovecin[i].buf, iovecin[i].buf_len);
buf += iovecin[i].buf_len;
}
/* discard const */
buf = (char *)mutctx->mutctx_iov.buf;
if (mutctx->mutctx_inject != NULL) {
memmove(buf + mutctx->mutctx_inject_sz, buf,
mutctx->mutctx_iov.buf_len);
memcpy(buf, mutctx->mutctx_inject, mutctx->mutctx_inject_sz);
}
/*
* perhaps needed to have not looked at yet
*/
mutctx->mutctx_qhdrin = *hdrin;
*hdrout = &mutctx->mutctx_qhdrin;
mutctx->mutctx_iov.buf_len += mutctx->mutctx_inject_sz;
*iovecout = &mutctx->mutctx_iov;
*numout = 1;
return 1;
}
static void mutcbk_finish_injecct_frames(void *arg)
{
struct mutcbk_ctx *mutctx = (struct mutcbk_ctx *)arg;
OPENSSL_free((char *)mutctx->mutctx_iov.buf);
mutctx->mutctx_iov.buf = NULL;
}
/* 16 path challenge frames */
#define PATH_CHALLENGE_FRAMES \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH" \
"\x1a" \
"ABCDEFGH"
DEF_FUNC(mount_flood)
{
int ok = 0;
SSL *ssl;
QUIC_CHANNEL *ch;
static struct mutcbk_ctx mutctx = { 0 };
static const unsigned char *inject_frames = (const unsigned char *)PATH_CHALLENGE_FRAMES;
mutctx.mutctx_inject = inject_frames;
mutctx.mutctx_inject_sz = sizeof(PATH_CHALLENGE_FRAMES) - 1;
REQUIRE_SSL(ssl);
ch = ossl_quic_conn_get_channel(ssl);
if (!TEST_ptr(ch))
goto err;
if (!TEST_true(ossl_quic_channel_set_mutator(ch, mutcbk_inject_frames,
mutcbk_finish_injecct_frames, &mutctx)))
goto err;
ok = 1;
err:
return ok;
}
DEF_FUNC(check_flood_stats)
{
int ok = 0;
SSL *ssl;
QUIC_CHANNEL *ch;
uint64_t path_response_count;
uint64_t path_challenge_count;
REQUIRE_SSL(ssl);
ch = ossl_quic_conn_get_channel(ssl);
if (!TEST_ptr(ch))
goto err;
path_challenge_count = ossl_quic_channel_get_path_challenge_count(ch);
path_response_count = ossl_quic_channel_get_path_response_count(ch);
/*
* The flood is delivered over a real socket and processed by the
* connection's assist thread asynchronously, so give it a chance to
* catch up rather than failing on the first observation.
*/
if (path_challenge_count < 16 || path_response_count < 1)
F_SPIN_AGAIN();
if (!TEST_uint64_t_eq(path_challenge_count, 16))
goto err;
if (!TEST_uint64_t_eq(path_response_count, 1))
goto err;
ok = 1;
err:
return ok;
}
DEF_SCRIPT(check_pc_flood, "check path challenge flood")
{
OP_SIMPLE_PAIR_CONN();
OP_SELECT_SSL(0, C);
OP_FUNC(mount_flood);
OP_ACCEPT_CONN_WAIT(L, S, 0);
OP_WRITE_B(C, "attack");
OP_SELECT_SSL(0, S);
OP_FUNC(check_flood_stats);
}
/*
* Test to make sure that SSL_accept_connection returns the same ssl object
* that is used in the various TLS callbacks
*
* Unlike TCP, QUIC processes new connections independently from their
* acceptance, and so we need to pre-allocate tls objects to return during
* connection acceptance via the user_ssl. This is just a quic test to validate
* that:
* 1) The new callback to inform the user of a new pending ssl acceptance works
* properly
* 2) That the object returned from SSL_accept_connection matches the one passed
* to various callbacks
*
* It would be better as its own test, but currently the tserver used in the
* other quic_tests doesn't actually accept connections (it pre-creates them
* and fixes them up in place), so testing there is not feasible at the moment
*
* For details on this issue see:
* https://github.com/openssl/project/issues/918
*/
static SSL *pending_ssl_obj = NULL;
static SSL *client_hello_ssl_obj = NULL;
static int check_pending_match = 0;
static int pending_cb_called = 0;
static int hello_cb_called = 0;
static int new_pending_cb(SSL_CTX *ctx, SSL *new_ssl, void *arg)
{
pending_ssl_obj = new_ssl;
pending_cb_called = 1;
return 1;
}
static int client_hello_cb(SSL *s, int *al, void *arg)
{
client_hello_ssl_obj = s;
hello_cb_called = 1;
return 1;
}
DEF_FUNC(init_pending_test)
{
pending_ssl_obj = NULL;
client_hello_ssl_obj = NULL;
check_pending_match = 0;
pending_cb_called = 0;
hello_cb_called = 0;
return 1;
}
DEF_FUNC(check_pending)
{
int ok = 0;
SSL *conn;
REQUIRE_SSL(conn);
if (check_pending_match) {
if (!TEST_true(pending_cb_called))
goto err;
if (!TEST_true(hello_cb_called))
goto err;
if (!TEST_ptr_eq(pending_ssl_obj, client_hello_ssl_obj))
goto err;
if (!TEST_ptr_eq(pending_ssl_obj, conn))
goto err;
pending_ssl_obj = client_hello_ssl_obj = NULL;
check_pending_match = 0;
pending_cb_called = hello_cb_called = 0;
}
ok = 1;
err:
return ok;
}
DEF_FUNC(new_listener)
{
int ok = 0;
SSL_CTX *ctx = NULL;
SSL *listener;
const char *name;
F_POP(name);
if (!TEST_ptr(ctx = SSL_CTX_new(OSSL_QUIC_server_method())))
goto err;
#if defined(OPENSSL_THREADS)
if (!TEST_true(SSL_CTX_set_domain_flags(ctx,
SSL_DOMAIN_FLAG_MULTI_THREAD
| SSL_DOMAIN_FLAG_BLOCKING)))
goto err;
#endif
if (!TEST_true(ssl_ctx_configure(ctx, 1)))
goto err;
SSL_CTX_set_new_pending_conn_cb(ctx, new_pending_cb, NULL);
SSL_CTX_set_client_hello_cb(ctx, client_hello_cb, NULL);
check_pending_match = 1;
if (!TEST_ptr(listener = SSL_new_listener(ctx, 0)))
goto err;
if (!TEST_true(ssl_attach_bio_dgram(listener, 0, NULL))) {
SSL_free(listener);
goto err;
}
if (!TEST_true(RADIX_PROCESS_set_ssl(RP(), name, listener))) {
SSL_free(listener);
goto err;
}
ok = 1;
err:
/* SSL object will hold ref, we don't need it */
SSL_CTX_free(ctx);
return ok;
}
DEF_SCRIPT(check_ctx_cbks, "Check new_pending and client_hello callbacks")
{
OP_FUNC(init_pending_test);
OP_PUSH_PZ("L");
OP_FUNC(new_listener);
OP_LISTEN(L);
OP_NEW_SSL_C(C);
OP_SET_PEER_ADDR_FROM(C, L);
OP_CONNECT_WAIT(C);
OP_ACCEPT_CONN_WAIT(L, S, 0);
OP_SELECT_SSL(0, S);
OP_FUNC(check_pending);
}
/*
* List of Test Scripts
* ============================================================================
*/
static SCRIPT_INFO *const scripts[] = {
USE(simple_conn),
USE(simple_thread),
USE(ssl_poll),
USE(poll_abort_blocking),
USE(check_cwm),
USE(check_pc_flood),
USE(check_ctx_cbks),
};